Multiplexed cellular profiling identifies an organoselenium compound as an inhibitor of CRM1-mediated nuclear export

Lucia Jimenez1, Victor Mayoral-Varo1, Carlos Amenábar1,2

  • 1Cancer Biology Department, Instituto de Investigaciones Biomédicas "Alberto Sols" (CSIC-UAM), Madrid, Spain.

Insights

A new platform identifies Chromosomal Region Maintenance 1 (CRM1) inhibitors for cancer and viral therapies. This approach screens compounds, revealing an organoselenium molecule with potent activity against the CRM1 nuclear export receptor.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Drug Discovery

Background:

  • Chromosomal region maintenance 1 (CRM1) is crucial for nuclear export of proteins involved in viral infections and cancer.
  • CRM1 inhibition is a therapeutic strategy for cancer, viral diseases, and overcoming resistance.
  • Selinexor, the first CRM1 inhibitor, shows promise but has dose-limiting toxicities, necessitating new therapeutic leads.

Purpose of the Study:

  • To develop and validate a CRM1 inhibitor discovery platform.
  • To screen for novel small molecules targeting CRM1 activity.
  • To investigate the CRM1-mediated nuclear export of specific proteins.

Main Methods:

  • Development of reporter cell lines using fluorescently labeled HIV-1 Rev protein to monitor CRM1 activity.
  • Co-culture of stable cell lines expressing fluorescent fusion proteins to track intracellular protein localization.
  • Screening of a compound library using the developed platform.

Main Results:

  • The platform successfully monitored CRM1 activity and protein nuclear export.
  • Investigated proteins like PDK1, p110α, STAT5A, FOXO1, 3, 4, and TRIB2.
  • Identified an organoselenium compound with significant activity against the CRM1 nuclear export receptor.
  • Demonstrated CRM1-independent nuclear export for TRIB2 and partial CRM1 dependence for p110α.

Conclusions:

  • The developed platform is effective for CRM1 inhibitor discovery.
  • Novel organoselenium compounds show potential as less toxic therapeutic agents.
  • Understanding CRM1-independent pathways is crucial for comprehensive therapeutic strategies.